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TREC 2020 Podcasts Track Overview

Authors :
Jones, Rosie
Carterette, Ben
Clifton, Ann
Eskevich, Maria
Jones, Gareth J. F.
Karlgren, Jussi
Pappu, Aasish
Reddy, Sravana
Yu, Yongze
Publication Year :
2021
Publisher :
arXiv, 2021.

Abstract

The Podcast Track is new at the Text Retrieval Conference (TREC) in 2020. The podcast track was designed to encourage research into podcasts in the information retrieval and NLP research communities. The track consisted of two shared tasks: segment retrieval and summarization, both based on a dataset of over 100,000 podcast episodes (metadata, audio, and automatic transcripts) which was released concurrently with the track. The track generated considerable interest, attracted hundreds of new registrations to TREC and fifteen teams, mostly disjoint between search and summarization, made final submissions for assessment. Deep learning was the dominant experimental approach for both search experiments and summarization. This paper gives an overview of the tasks and the results of the participants' experiments. The track will return to TREC 2021 with the same two tasks, incorporating slight modifications in response to participant feedback.

Details

Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....912584e1ee25515b5e9ad0770a2f2237
Full Text :
https://doi.org/10.48550/arxiv.2103.15953